Results 31 to 40 of about 23,234 (303)

Prussian Blue Modified Solid Carbon Nanorod Whisker Paste Composite Electrodes: Evaluation towards the Electroanalytical Sensing of H2O2

open access: yesInternational Journal of Electrochemistry, 2012
Metallic impurity free solid carbon nanorod “Whiskers” (SCNR Whiskers), a derivative of carbon nanotubes, are explored in the fabrication of a Prussian Blue composite electrode and critically evaluated towards the mediated electroanalytical sensing of ...
Carolin Siimenson   +6 more
doaj   +1 more source

Photothermal and Catalytic Performance of Multifunctional Cu-Fe Bimetallic Prussian Blue Nanocubes with the Assistance of Near-Infrared Radiation

open access: yesNanomaterials, 2023
Copper and iron are the basic metal elements that have attracted much attention in industry. Prussian blue (PB) is a significant class of metal–organic frameworks (MOFs); however, the lack of such linkages between the structure and properties, as well as
Bairui Qi   +3 more
doaj   +1 more source

A Possible Mechanism behind the Discovery of Prussian Blue [PDF]

open access: yes, 2019
In this work, we synthesized Prussian Blue (PB) by pyrolysis of nitrogen-rich organic compounds and ferric/ferrous salts in the presence of alkali metal salt in inert atmosphere at high temperature, which was completely different form popular method ...
Youxin, Duan, Junyan, Zhang
core   +1 more source

Low Potential Prussian Blue Analogs: Manganese Hexacyanochromate [PDF]

open access: yes, 2019
Prussian blue analogues (PBAs) have recently shown outstanding electrochemical properties ascribable to their unique open-framework crystal structure that allows the reversible insertion of alkali ions with negligible perturbation to the framework itself.
Isaac, Capone   +4 more
core   +1 more source

Commercial Prussian blue [PDF]

open access: yesThe Analyst, 1896
n ...
Parry, Ernest J., Coste, John Henry
openaire   +2 more sources

Structural complexity in Prussian blue analogues [PDF]

open access: yesMaterials Horizons, 2021
We survey the most important kinds of structural complexity in Prussian blue analogues and their implications for materials function. In particular, we explore the challenges for K2Mn[Fe(CN)6], the leading cathode material for K-ion batteries.
John Cattermull   +2 more
openaire   +3 more sources

Exploration of glassy state in Prussian blue analogues [PDF]

open access: yes, 2021
Prussian blue analogues (PBAs), a class of microporous crystalline coordination frameworks, are long known for their diverse properties in porosity, magnetic, charge transport, catalysis, optics, and more. Versatile structural composition and the ability
Ryo, Ohtani   +9 more
core   +1 more source

Filling Vacancies in a Prussian Blue Analogue Using Mechanochemical Post-Synthetic Modification [PDF]

open access: yes, 2020
Mechanochemical grinding of polycrystalline powders of the Prussian blue analogue (PBA) Mn[Co(CN)$_{\textbf6}$]$_{\textbf{2/3}}\boldsymbol\Box_{\textbf{1/3}}\cdot\boldmath x$H$_{\textbf 2}$O and K$_{\textbf 3}$Co(CN)$_{\textbf 6}$ consumes the latter and
John, Cattermull   +4 more
core   +1 more source

High‐Capacity Sodium–Prussian Blue Rechargeable Battery through Chelation‐Induced Nano‐Porosity

open access: yesAdvanced Materials Interfaces, 2020
Across the different classes of sodium‐ion battery cathodes, Prussian Blue holds the greatest promise because of its high working potentials, abundance, low‐toxicity and ease of synthesis.
Cheryldine Qiu Xuan Lim   +3 more
doaj   +1 more source

A Low-Temperature Hydrothermal Synthesis of Prussian Blue Nanocrystal and Its Application in H2O2 Detection

open access: yesJournal of Chemistry, 2022
Uniform Prussian blue Fe3[Fe(CN)6]2 nanocrystals were synthesized by a direct dissociation and reduction of the single-Fe(III)-source precursor K3Fe(CN)6 under low-temperature hydrothermal conditions.
J. Yang, D. H. Li, L. L. Ji
doaj   +1 more source

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